Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I am lost. I cannot assign an int to a dereferenced int *.

  printf("in octave\n");

  int *default_octave;
  printf("attr[%d]: %s\n",i+1,attr[i+1]);

  const char *octave_char = attr[i+1];
  printf("octave_char: %s\n", octave_char);

  int octave_number = atoi(octave_char);
  printf("octave_number: %d\n", octave_number);
  fflush(stdout);

  *default_octave=octave_number;
  printf("in octave pt 2\n");
  fflush(stdout);

This is the output:

in octave
attr[1]: 4
octave_char: 4
octave_number: 4
Segmentation fault

Why?

Running the GDB debugger gets to that line and then seg faults, too.

4

0            int octave_number = atoi(octave_char);
(gdb) s
41            printf("octave_number: %d\n", octave_number);
(gdb)
octave_number: 4
42            fflush(stdout);
(gdb)
43            *default_octave=octave_number;
(gdb) print octave_number
$1 = 4
(gdb) s

Program received signal SIGSEGV, Segmentation fault.
0x0000000000400a7b in parse_song (song_data=0x7fffffffe7a8, attr=0x602600) at nullaby.c:43
43            *default_octave=octave_number;
(gdb)

I have no idea what I can do to fix this.

share|improve this question

2 Answers 2

up vote 3 down vote accepted

You have an int pointer. Right.

It just mean you have a variable pointing to some memory area.
But you haven't allocated/reserved that memory area. So it can point to anything.

And it will surely point to a memory area you don't own, hence the segmentation fault.

You need to allocate memory for the pointer...

For instance:

 int * default_octave = malloc( sizeof( int ) );

Or you may also use:

int   default_octave_val;
int * default_octave = &default_octave_val;

Either you allocate memory to store your int (and then get a pointer to a valid memory area), or you create a pointer to an existing memory area (in the given example, a stack address).

Then you can de-reference that pointer, as it points to a valid memory area.
If it don't, you'll have a segmentation fault, or a bus error, depending on your OS.

share|improve this answer
    
Thanks for giving me a pointer epiphany. Everything makes sense now about pointers and stack and heap... –  twmb Mar 30 '12 at 0:37
    
Sure... : ) But here, there's no preferred way... It all depends on what the op is trying to achieve... As a pointer can point to just anything, it can point to a stack address or a heap address... It just need to point to a valid address if you want to dereference it... –  Macmade Mar 30 '12 at 0:39
    
An no problem about the vote count, as long as the op gets the answer he needs... : ) –  Macmade Mar 30 '12 at 0:39

It segfaults because you never initialise default_octave to point at anything that can store an int.

share|improve this answer
    
For example, you can assign the address of another int object, default_octave = &another_octave, or you can allocate memory for it yourself, , e.g. default_octave = malloc(sizeof(int)); (which must later be freed with free(default_octave);, and allocating memory for just one int is not all that useful anyway). –  dreamlax Mar 30 '12 at 0:34
    
@OliCharlesworth: I downvoted but have since removed. I see that you are a C expert and that this is an extremely basic problem for you. I do not feel, however, that this answer is useful to the OP. Nonetheless, you correctly identified the problem very shortly after James McLaughlin did. –  bernie Mar 30 '12 at 0:45
    
@bernie: Fair enough. My policy is to write the minimum post that answers the question; if the OP doesn't understand, they're always welcome to comment, and I will elucidate. –  Oliver Charlesworth Mar 30 '12 at 0:47
    
Agreed. It arguably doesn't make sense to flood the OP will information when a short answer will suffice. Thanks for sharing your viewpoint. –  bernie Mar 30 '12 at 0:51

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.